golf balls
The golf ball design optimizes core hardness and impulse differences to maintain driver distance and enhance 8-iron control by balancing spin rates, addressing the challenge of controlling spin rates on both types of shots.
Patent Information
- Application Number
- JP2022028072
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-25
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2042-02-25
AI Technical Summary
Professional golfers face a challenge in achieving improved control with an 8-iron shots while maintaining the distance of their driver shots, as reducing spin rate for driver shots reduces control with the 8-iron and increasing spin rate for 8-iron shots decreases driver distance.
A golf ball design with a spherical core having specific hardness distributions and a cover, where the average hardness at certain distances from the center and impulse differences measured under simulated hitting conditions are optimized to enhance spin rate on 8-iron shots while minimizing spin rate on driver shots.
The golf ball maintains distance on driver shots while improving controllability with the 8-iron by suppressing spin rate increases on driver shots and enhancing spin rate on 8-iron shots.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to golf balls having multi-layer cores. [Background technology]
[0002] In order to achieve a long distance on driver shots, golf balls have been proposed in which the hardness distribution of the two-layer core has been devised.
[0003] For example, Patent Document 1 discloses a golf ball having a spherical core and a cover disposed on the outside of the spherical core, the spherical core having an inner layer and an outer layer, and a hardness (H x+1 ) and the hardness (H x-1 ) and the difference (H x+1 -H x-1 ) is 0 or more in Shore C hardness, and the surface hardness (H X+Y ) has a Shore C hardness of more than 70, the hardness gradient angle α of the inner layer is 0° or greater, and the difference (α-β) between the angle α and the hardness gradient angle β of the outer layer is 0° or greater.
[0004] Patent Document 2 discloses a three-piece solid golf ball including an inner core made of a rubber composition, an outer core made of the rubber composition and covering the inner core, and a cover made primarily of a polyurethane elastomer and covering the outer core, wherein the inner core has a JIS-C hardness in the range of 50 to 85, the outer core has a JIS-C hardness in the range of 70 to 90, the difference (H0-H1) between the JIS-C hardness H0 of the outer core surface and the JIS-C hardness H1 of the inner core center is 20 to 30, the cover has a Shore D hardness of 46 to 55, and the cover has a thickness of 1.1 to 2.1 mm. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-123634 [Patent Document 2] Japanese Patent Application Laid-Open No. 2003-190331 Summary of the Invention [Problem to be solved by the invention]
[0006] Professionals and advanced players desire improved control when hitting a golf ball with an 8-iron while maintaining the distance of their driver shots. Reducing the spin rate to increase the distance of driver shots also reduces the spin rate when hitting a golf ball with an 8-iron, resulting in reduced control with the 8-iron. In addition, increasing the spin rate when hitting a golf ball with an 8-iron also increases the spin rate on driver shots, resulting in reduced distance. Thus, it has been difficult to improve control with an 8-iron while maintaining the distance of driver shots.
[0007] The present disclosure has been made in consideration of the above circumstances, and has as its object to provide a golf ball that increases the spin rate on 8-iron shots while suppressing an increase in the spin rate on driver shots. [Means for solving the problem]
[0008] The golf ball of the present disclosure that can solve the above problem is a golf ball that includes a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core, and the average hardness (Shore C) of the hardness (H2.5) at a point 2.5 mm from the center of the spherical core and the hardness (H5) at a point 5 mm from the center of the spherical core is a, and the average hardness (Shore C) of the hardness (H7.5) at a point 7.5 mm from the center of the spherical core and the hardness (H9) at a point 9 mm from the center of the spherical core is a. The contact force tester is characterized in that, when the degree of deflection (Shore C) is b, the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with a driver is A, and the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with an 8-iron is B, A × a is 12,200 or less and B × b is 20,400 or more. [Effects of the Invention]
[0009] According to the present disclosure, a golf ball can be obtained that suppresses an increase in spin rate on driver shots while increasing spin rate on 8-iron shots. The golf ball of the present disclosure can maintain the distance when used with a driver while improving controllability when used with an 8-iron. [Brief explanation of the drawings]
[0010] [Figure 1] 1 is a partially cutaway cross-sectional view showing a golf ball according to an embodiment of the present disclosure. [Figure 2] Schematic diagram of a contact force tester used in the present disclosure. [Figure 3] FIG. 2 is an enlarged partial cross-sectional view of a collision portion of a contact force tester used in the present disclosure. [Figure 4] 1 is a graph showing an example of time series data of force measured by a contact force tester. [Figure 5] A photograph used as a drawing to show the face of a driver. [Figure 6] A photo used as a drawing showing the face of an 8-iron. DETAILED DESCRIPTION OF THE INVENTION
[0011] The golf ball of the present disclosure is a golf ball including a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core, wherein, where a is the average hardness (Shore C) of the hardness (H2.5) at a point 2.5 mm from the center of the spherical core and the hardness (H5) at a point 5 mm from the center of the spherical core, b is the average hardness (Shore C) of the hardness (H7.5) at a point 7.5 mm from the center of the spherical core and the hardness (H9) at a point 9 mm from the center of the spherical core, A is the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with a driver, and B is the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with an 8-iron, A×a is 12,200 or less, and B×b is 20,400 or more.
[0012] The golf ball of the present disclosure includes a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core. The spherical core preferably has a spherical inner core layer and an outer core layer that encases the spherical inner core layer.
[0013] [Average hardness a] In the golf ball of the present disclosure, the average hardness a is the average hardness (Shore C) of the hardness (H2.5) measured 2.5 mm from the center of the spherical core and the hardness (H5) measured 5 mm from the center of the spherical core. The average hardness a is preferably 70 or less, more preferably 69 or less, and even more preferably 68 or less, in Shore C hardness. By setting the average hardness a to 70 or less, it is possible to reduce the spin rate when hitting the golf ball with a driver while maintaining the spin rate when hitting the golf ball with an 8-iron. Furthermore, the lower limit of the average hardness a is not particularly limited, but is preferably 50, more preferably 52, and even more preferably 54, in Shore C hardness.
[0014] [Average hardness b] In the golf ball of the present disclosure, the average hardness b is the average hardness (Shore C) of the hardness (H7.5) measured 7.5 mm from the center of the spherical core and the hardness (H9) measured 9 mm from the center of the spherical core. The average hardness b is preferably 70 or greater in Shore C hardness, more preferably 72 or greater, and even more preferably 74 or greater. By setting the average hardness b to 70 or greater in Shore C hardness, the spin rate when hitting the golf ball with an 8-iron can be increased. Note that setting the average hardness b to 70 or greater in Shore C hardness increases the spin rate on driver shots, while setting the average hardness a to 70 or less in Shore C hardness suppresses the increase in spin rate on driver shots. The upper limit of the average hardness b is not particularly limited, but is preferably 90, more preferably 88, and even more preferably 86 in Shore C hardness.
[0015] [Hardness difference (ba)] The hardness difference (ba) between the average hardness b and the average hardness a is preferably 5 or more, more preferably 7 or more, and even more preferably 9 or more on the Shore C hardness scale, and is preferably 40 or less, more preferably 35 or less, and even more preferably 30 or less. If the hardness difference (ba) is within the above range, the spin rate on driver shots can be maintained while the spin rate on 8-iron shots can be increased.
[0016] [Core hardness distribution] (Hardness Ho) The spherical core has a center hardness (Ho) of preferably 50 or more, more preferably 55 or more, and even more preferably 60 or more, in Shore C hardness, and preferably 75 or less, more preferably 70 or less, and even more preferably 65 or less. If the center hardness (Ho) of the spherical core is within the above range, the resilience will be better.
[0017] (Hardness H2.5) The hardness (H2.5) at a point 2.5 mm from the center of the spherical core is preferably 70 or less, more preferably 68 or less, and even more preferably 65 or less, in Shore C hardness, and is preferably 55 or more, more preferably 58 or more, and even more preferably 60 or more.
[0018] (hardness H5) The hardness (H5) at a point 5 mm from the center of the spherical core is preferably 75 or less, more preferably 72 or less, and even more preferably 70 or less, in Shore C hardness, and is preferably 60 or more, more preferably 62 or more, and even more preferably 68 or more.
[0019] (Hardness H7.5) The hardness (H7.5) at a point 7.5 mm from the center of the spherical core is preferably 65 or more, more preferably 70 or more, and even more preferably 75 or more, in Shore C hardness, and is preferably 90 or less, more preferably 85 or less, and even more preferably 80 or less.
[0020] (hardness H9) The hardness (H9) at a point 9 mm from the center of the spherical core is preferably 70 or more, more preferably 75 or more, and even more preferably 80 or more, in Shore C hardness, and is preferably 95 or less, more preferably 90 or less, and even more preferably 85 or less.
[0021] (Hardness difference (H9-Ho)) The hardness difference (H9-Ho) between the hardness (H9) at a point 9 mm from the center of the spherical core and the center hardness (Ho) of the core is preferably at least 5, more preferably at least 8, and even more preferably at least 10, in Shore C hardness. If the hardness difference (H9-Ho) is within the above range, the spin rate on driver shots can be maintained while the spin rate on 8-iron shots can be increased.
[0022] (hardness H11) The hardness (H11) at a point 11 mm from the center of the spherical core is preferably 65 or more, more preferably 70 or more, and even more preferably 75 or more, in Shore C hardness, and is preferably 95 or less, more preferably 90 or less, and even more preferably 85 or less.
[0023] (Hardness H12.5) The hardness (H12.5) at a point 12.5 mm from the center of the spherical core is preferably 65 or more, more preferably 70 or more, and even more preferably 75 or more, in Shore C hardness, and is preferably 95 or less, more preferably 90 or less, and even more preferably 85 or less.
[0024] (hardness H15) The hardness (H15) at a point 15 mm from the center of the spherical core is preferably 65 or more, more preferably 70 or more, and even more preferably 75 or more, in Shore C hardness, and is preferably 95 or less, more preferably 90 or less, and even more preferably 85 or less.
[0025] The hardnesses Ho, H2.5, H5, H7.5, H9, H11, H12.5, and H15 are measured on a cross section obtained by dividing the spherical core into two equal parts by a plane passing through the center of the spherical core.
[0026] (Hardness Hs) The spherical core preferably has a surface hardness (Hs) of 70 or more, more preferably 75 or more, and even more preferably 80 or more, in Shore C hardness, and preferably 100 or less, more preferably 95 or less, and even more preferably 90 or less. If the surface hardness (Hs) of the core is within the above range, the resilience will be better.
[0027] (Hardness difference (Hs-H11)) The hardness difference (Hs-H11) between the surface hardness Hs of the spherical core and the hardness (H11) at a point 11 mm from the center of the spherical core, in Shore C hardness, is preferably 0 or more, more preferably 2 or more, and even more preferably 4 or more, and is preferably 20 or less, more preferably 18 or less, and even more preferably 16 or less.
[0028] (Hardness difference (Hs‐Ho)) The spherical core preferably has a hardness distribution of outer hardness and inner softness. The hardness difference (Hs-Ho) between the surface hardness (Hs) and the center hardness (Ho) of the spherical core is preferably greater than 10, more preferably 15 or more, and even more preferably 20 or more, in Shore C hardness. The upper limit of the hardness difference (Hs-Ho) is not particularly limited, but is preferably 35, more preferably 30, and even more preferably 28, in Shore C hardness. By keeping the hardness difference (Hs-Ho) within the above range, an increase in spin rate on driver shots can be prevented.
[0029] The diameter of the spherical inner core is preferably 14 mm or more, more preferably 16 mm or more, and is preferably 28 mm or less, and more preferably 24 mm or less, because if the diameter of the spherical inner core is within the above range, the spin rate for the driver and 8-iron can be designed without affecting the resilience performance.
[0030] The thickness of the outer core layer is preferably 6 mm or more, more preferably 8 mm or more, and is preferably 13 mm or less, and more preferably 12 mm or less, because if the thickness of the outer core layer is within the above range, it is possible to maintain both resilience performance and spin performance.
[0031] The diameter of the spherical core consisting of the inner core layer and the outer core layer is preferably 37 mm or more, more preferably 37.5 mm or more, and even more preferably 38 mm or more, and is preferably 41.5 mm or less, more preferably 41 mm or less, and even more preferably 40.5 mm or less. If the diameter of the spherical core is 37 mm or more, the cover will not be too thick, resulting in better resilience. On the other hand, if the diameter of the spherical core is 41.5 mm or less, the cover will not be too thin, allowing the cover to perform its functions to the fullest.
[0032] [Compressive deformation of core] When the diameter of the spherical core is 34.8 mm to 42.2 mm, preferably 37 mm to 41.5 mm, the amount of compressive deformation (the amount the core shrinks in the compressive direction) from an initial load of 98 N to a final load of 1275 N is preferably 2.0 mm or more, more preferably 2.1 mm or more, and preferably 3.5 mm or less, more preferably 3.3 mm or less, when the diameter of the spherical core is 34.8 mm to 42.2 mm, preferably 37 mm to 41.5 mm. When the compressive deformation of the spherical core is within the above range, a good shot feeling can be obtained.
[0033] The golf ball of the present disclosure has a cover positioned outside the core. The cover may have one or more layers, and may be a single layer or multiple layers. When the cover has multiple layers, the outermost cover layer may be referred to as the outermost cover layer or outer cover layer, and the cover layer positioned between the spherical core and the outermost cover layer may be referred to as the inner cover layer or intermediate layer.
[0034] The thickness of the cover is preferably 4.0 mm or less, more preferably 3.0 mm or less, and even more preferably 2.5 mm or less. If the cover thickness is 4.0 mm or less, the resilience and shot feel of the resulting golf ball will be better. The thickness of the cover is preferably 0.3 mm or more, more preferably 0.5 mm or more, and even more preferably 0.8 mm or more. If the cover thickness is less than 0.3 mm, the durability and abrasion resistance of the cover may decrease. In the case of multiple cover layers, it is preferable that the total thickness of the multiple cover layers be within the above range.
[0035] The material hardness (slab hardness) of the outermost cover layer of the golf ball of the present disclosure is preferably set appropriately depending on the desired performance of the golf ball. For example, the material hardness of the outermost cover layer composition is preferably 10 or more, more preferably 15 or more, and even more preferably 20 or more, in Shore D hardness, and preferably 50 or less, more preferably 45 or less, and even more preferably 40 or less. In the case of multiple cover layers, the material hardness of the inner cover layer composition is preferably 40 or more, more preferably 45 or more, and even more preferably 50 or more, and preferably 75 or less, more preferably 72 or less, and even more preferably 70 or less, in Shore D hardness.
[0036] [Golf balls] The structure of the golf ball of the present disclosure is not particularly limited as long as it comprises a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core. Examples of the golf ball of the present disclosure include a three-piece golf ball having a spherical core having an inner core layer and an outer core layer and a single-layer cover positioned outside the spherical core, a four-piece golf ball having a spherical core having an inner core layer and an outer core layer and a two-layer cover positioned outside the spherical core, and a multi-piece golf ball having a spherical core having an inner core layer and an outer core layer and a three or more layer cover positioned outside the spherical core.
[0037] 1 is a partially cutaway cross-sectional view showing a golf ball 2 according to one embodiment of the present disclosure. The golf ball 2 has a spherical core 11 composed of an inner core layer 11a and an outer core layer 11b enclosing the inner core layer 11a, and a cover 12 enclosing the spherical core 11. A large number of dimples 14 are formed on the surface of the cover 12. The portions of the surface of the golf ball other than the dimples 14 are lands 16. The golf ball has a paint layer and a mark layer on the outside of the cover, but these layers are not shown in the figure.
[0038] The diameter of the golf ball of the present disclosure is preferably 40 mm to 45 mm. From the viewpoint of meeting the standards of the United States Golf Association (USGA), a diameter of 42.67 mm or more is particularly preferred. From the viewpoint of reducing air resistance, a diameter of 44 mm or less is more preferred, and 42.80 mm or less is particularly preferred. Furthermore, the weight of the golf ball of the present disclosure is preferably 40 g or more and 50 g or less. From the viewpoint of obtaining high inertia, a weight of 44 g or more is more preferred, and 45.00 g or more is particularly preferred. From the viewpoint of meeting the standards of the USGA, a weight of 45.93 g or less is particularly preferred.
[0039] In the case of a golf ball of the present disclosure having a diameter of 40 mm to 45 mm, the amount of compressive deformation (amount of shrinkage in the compression direction) when a final load of 1275 N is applied after an initial load of 98 N is preferably 2.0 mm or more, more preferably 2.1 mm or more, and is preferably 4.0 mm or less, more preferably 3.0 mm or less.
[0040] [impulse difference A] In the present disclosure, the impulse difference A is the difference between the backspin impulse and the topspin impulse (backspin impulse - topspin impulse) measured using a contact force tester under conditions equivalent to hitting a golf ball with a driver. The impulse difference A is preferably 200 kN μs or less, more preferably 190 kN μs or less, and even more preferably 180 kN μs or less. This is because by setting the impulse difference A to 200 kN μs or less, the amount of spin when hitting a golf ball with a driver can be reduced. Furthermore, the lower limit of the impulse difference A is not particularly limited, but is preferably 90 kN μs, more preferably 100 kN μs, and even more preferably 110 kN μs.
[0041] [impulse difference B] In the present disclosure, impulse difference B is the difference between the backspin impulse and the topspin impulse (backspin impulse - topspin impulse) measured using a contact force tester under conditions equivalent to hitting a golf ball with an 8-iron. The impulse difference B is preferably 230 kN μs or greater, more preferably 240 kN μs or greater, and even more preferably 250 kN μs or greater. This is because by setting the impulse difference B to 230 kN μs or greater, the amount of spin when hitting a golf ball with an 8-iron can be increased. Furthermore, the upper limit of the impulse difference B is not particularly limited, but is preferably 350 kN μs, more preferably 340 kN μs, and even more preferably 330 kN μs.
[0042] [Product A×a] In the present disclosure, the product A×a is the product of the impulse difference A (kN μs) and the average hardness a (Shore C). The product A×a is preferably 12,200 or less, more preferably 12,000 or less, and even more preferably 11,800 or less. By setting the product A×a to 12,200 or less, it is possible to reduce the spin rate when hitting a golf ball with a driver while maintaining the spin rate when hitting the golf ball with an 8-iron. Furthermore, the lower limit of the product A×a is not particularly limited, but is preferably 7,000, more preferably 7,500, and even more preferably 8,000.
[0043] [Product B×b] In the present disclosure, the product B×b is the product of the impulse difference B (kN μs) and the average hardness b (Shore C). The product B×b is preferably 20,400 or greater, more preferably 20,600 or greater, and even more preferably 20,800 or greater. This is because having the product B×b of 20,400 or greater can increase the spin rate when hitting a golf ball with an 8-iron. Having the product B×b of 20,400 or greater also increases the spin rate when hitting a golf ball with a driver. However, having the product B×b of 20,400 or greater and the product A×a of 12,200 or less can increase the spin rate when hitting a golf ball with an 8-iron while maintaining the spin rate when hitting a golf ball with a driver. The upper limit of the product B×b is not particularly limited, but is preferably 28,000, more preferably 27,500, and even more preferably 27,000.
[0044] [Ratio ((B×b) / (A×a))] The ratio of B×b to A×a ((B×b) / (A×a)) is preferably 1.80 or greater, more preferably 1.82 or greater, and even more preferably 1.84 or greater. By setting the ratio ((B×b) / (A×a)) to 1.80 or greater, it is possible to increase the spin rate on shots with an 8-iron while maintaining the spin rate on driver shots. There is no particular upper limit to the ratio ((B×b) / (A×a)), but it is preferably 2.80, more preferably 2.75, and even more preferably 2.70.
[0045] [Ratio (B / A)] The ratio (B / A) of the impulse difference B to the impulse difference A is preferably 1.60 or greater, more preferably 1.62 or greater, and even more preferably 1.64 or greater. By setting the ratio (B / A) to 1.60 or greater, it is possible to increase the spin rate on shots with an 8-iron while maintaining the spin rate on driver shots. There is no particular upper limit to the ratio (B / A), but it is preferably 2.50, more preferably 2.45, and even more preferably 2.40.
[0046] Hereinafter, a method for measuring the topspin impulse and backspin impulse of a golf ball according to the present disclosure will be described.
[0047] A method for calculating the impulse difference in the present disclosure will be described with reference to Figures 2 to 4. Figure 2 shows a contact force tester for measuring the impulse of a golf ball in the present disclosure. Figure 3 is an enlarged cross-sectional view of the collision portion 4 against which the golf ball collides.
[0048] The contact force tester 1 can simulate the condition of hitting a golf ball with a club face and measure various forces at that time. The contact force tester 1 includes a launcher 5 that can launch a golf ball 2, for example, vertically upward, and a collision unit 4 that is positioned above the launched golf ball 2 and has a striking surface 3 that collides with the golf ball 2.
[0049] Since the distance between the launching device 5 and the striking surface 3 is relatively short, the initial velocity of the golf ball 2 corresponds to the impact velocity. This impact velocity also corresponds to the head speed of the club head in an actual golf swing. In light of this, the impact velocity between the golf ball 2 and the striking surface 3 can be set, for example, within a range of approximately 10 m / s to 50 m / s.
[0050] A target value for the initial velocity of the golf ball 2 is set by a volume or the like of the controller 6. Furthermore, the controller 6 can calculate the actual value of the initial velocity of the golf ball 2 using the distance between the first sensor S1 and the second sensor S2 provided on the launching device 5 and the time difference between blocking the sensors, and output the calculated value to a computer device PC or the like.
[0051] Furthermore, the contact force tester 1 includes a strobe device 7 and a high-speed camera device 8 that can photograph the collision between the striking surface 3 and the golf ball 2 and the golf ball 2 rebounding after the collision. The strobe device 7 is connected to a strobe power supply 9. The camera device 8 is also connected to a camera power supply 10 via a capacitor box. The captured image data is then stored in the computer device PC or the like. By incorporating these devices, it is possible to measure the sliding velocity, contact area, launch velocity, launch angle, and backspin amount of the golf ball 2 upon collision with the striking surface 3, which will be described later.
[0052] FIG. 3 is a partial cross-sectional view showing the collision unit 4 of the contact force tester 1. The collision unit 4 includes a base plate 19, a load cell 21, a collision plate 23, a main bolt 25, and a small bolt 27. The collision plate 23 is composed of a main body 29 and a cover plate 31. In this figure, the z direction is rotated α degrees counterclockwise from the vertical upward direction. The x direction is rotated α degrees counterclockwise from the horizontal rightward direction. The x direction and the z direction are perpendicular to each other. The angle α can be changed depending on the measurement. The base plate 19, the load cell 21, and the collision plate 23 are positioned so that they extend in the x direction.
[0053] The base plate 19, main bolt 25, and small bolt 27 may be made of any material as long as they have excellent strength and rigidity. Steel is typically used. The thickness of the base plate 19 is 5.35 mm. Furthermore, the model number of the main bolt 25 according to the JIS standard is M10, and the model number of the small bolt 27 is M3.
[0054] A three-component force sensor (model 9067) manufactured by Kistler is used for the load cell 21. This sensor is capable of measuring force components in the x, y (directions perpendicular to the paper surface in FIG. 3), and z directions. Measurements are performed by connecting a charge amplifier (model 5011B manufactured by Kistler) not shown to the load cell 21. A through hole 33 is provided in the center of the load cell 21, and the main bolt 25 passes through this through hole 33.
[0055] The main body 29 of the collision plate 23 is made of stainless steel (SUS-630). The thickness of the main body 29 is preferably 10 mm to 20 mm, and more preferably 15 mm. The planar shape of the main body 29 is the same as the planar shape of the load cell 21, and is preferably a square with sides of 40 mm to 60 mm, and more preferably a square with sides of 56 mm. The tip of the main bolt 25 is screwed into the main body 29. This sandwiches the load cell 21 between the base plate 19 and the main body 29, and the position of the load cell 21 is fixed.
[0056] The covering plate 31 is detachably fixed to the main body 29 by two small bolts 27, 27. The thickness of the covering plate 31 is preferably 1.0 mm to 5.0 mm, and more preferably 2.5 mm. The planar shape of the covering plate 31 is the same as the planar shape of the load cell 21, and is preferably a square with sides of 40 mm to 60 mm, and more preferably a square with sides of 56 mm. The covering plate 31 is provided to keep the state of the collision surface of the collision plate 23 constant.
[0057] The covering plate 31 can be made of various materials, surface shapes, and surface structures, but is preferably made of the same material as the face of the golf club head to be analyzed. For example, in this disclosure, when measuring the impulse of a driver shot, a titanium alloy (6-4Ti) containing 6% by mass of aluminum and 4% by mass of vanadium is used as the covering plate 31. In this case, the 10-point average roughness Rz of the covering plate 31 is 13.6 μm±2.0 μm.
[0058] In the present disclosure, when measuring the impulse of an 8-iron, it is preferable to use a coating material 31 made by processing the face of the product used in the spin rate measurement in order to align the iron face shape between the spin rate measurement and the contact force measurement.
[0059] When measuring the impulse with the contact force tester, the golf ball 2 is shot vertically upward and is caused to collide with approximately the center of the collision plate 23. The speed of the golf ball 2 immediately before impact can be set to a predetermined speed within a range of approximately 10 m / s to 50 m / s.
[0060] After the collision, the golf ball 2 bounces back in the lower right direction in Figure 3. The load cell 21 measures Fn(t), which is time series data of the z-direction force during this collision, and Ft(t), which is time series data of the x-direction force. Measurement is performed by sampling data at a frequency of 5,000,000 Hz. The sampled data is smoothed by calculating a moving average of seven points. Time T1 is calculated from the measured Fn(t). This T1 is the time from the start of the collision until the sign of Fn(t) first changes from positive to zero. Furthermore, time T2 is calculated from the measured Ft(t). This T2 is the time from the start of the collision until the sign of Ft(t) first changes from positive to negative.
[0061] Figure 4 is a graph showing an example of Fn(t) and Ft(t) measured at the collision point 4 in Figure 3. The origin P0 of this graph is the position where the load cell 21 begins to sense force, which corresponds approximately to the start of the collision between the collision plate 23 and the golf ball 2. Fn(t), which is the force in the z direction, gradually increases from point P0, reaches a peak at point P1, and then gradually decreases from there to zero at point P2. Point P2 is the point where the load cell 21 no longer senses force, which corresponds approximately to the point when the golf ball 2 leaves the collision plate 23.
[0062] The force in the x-direction (i.e., shear force), Ft(t), gradually increases from point P0, reaches a peak at point P3, then gradually decreases and becomes negative from point P4 onwards. It then reaches a minimum at point P5, then gradually increases from there and becomes positive again at point P6. From point P6 onwards, the shear force acting on golf ball 2 follows a curve as shown by the dotted line in Figure 4, but because golf ball 1 separates from load cell 21 at point P2, the curve of Ft(t) sensed by load cell 21 moves towards point P2 as shown by the solid line, where it becomes zero.
[0063] The area Sa of the region surrounded by the Ft(t) curve and the time axis and filled with diagonal lines slanting upward to the right represents the impulse where the shear force is positive. The area Sb of the region surrounded by the Ft(t) curve and the time axis and filled with diagonal lines slanting upward to the left represents the impulse where the shear force is negative. The area Sc of the region surrounded by the Ft(t) curve and the time axis and filled with vertical lines represents the impulse where the shear force is positive.
[0064] The impulse Sa is the impulse of a force acting in the positive direction of the x-axis, and therefore acts in a direction that promotes backspin. In other words, the impulse Sa is the backspin impulse in this disclosure. The impulse Sb is the impulse of a force acting in the negative direction of the x-axis, and therefore acts in a direction that suppresses backspin. In other words, the impulse Sb is the topspin impulse in this disclosure. It can be said that the greater the value obtained by subtracting the impulse Sb from the impulse Sa (hereinafter, this value will also be referred to as the "impulse difference"), the more easily backspin is applied to the golf ball.
[0065] 4, T1 is the time from the start of the collision until the sign of Fn(t) first changes from positive to zero, as described above, and is the time from point P0 to point P2. Also, T2 is the time from the start of the collision until the sign of Ft(t) first changes from positive to negative, as described above, and is the time from point P0 to point P4.
[0066] [Golf ball constituent materials] Next, the materials constituting the golf ball of the present disclosure will be described. The inner core layer and outer core layer of the golf ball of the present disclosure are preferably formed from a rubber composition containing (a) a base rubber, (b) an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or a metal salt thereof as a co-crosslinking agent, and (c) a crosslinking initiator.
[0067] Hereinafter, the rubber composition forming the inner core layer will be referred to as the “rubber composition for the inner core layer,” and the rubber composition forming the outer core layer will be referred to as the “rubber composition for the outer core layer.” In the present disclosure, the rubber composition for the inner core layer and the rubber composition for the outer core layer may be the same or different.
[0068] ((a) Base rubber) The base rubber (a) can be natural rubber and / or synthetic rubber, such as polybutadiene rubber, natural rubber, polyisoprene rubber, styrene polybutadiene rubber, or ethylene-propylene-diene rubber (EPDM). These can be used alone or in combination of two or more. Among these, high-cis polybutadiene, which has cis-1,4 bonds in an amount of 40% by mass or more, preferably 80% by mass or more, and more preferably 90% by mass or more, is particularly suitable, as it provides excellent resilience. The high-cis polybutadiene preferably has a 1,2-vinyl bond content of 2% by mass or less, more preferably 1.7% by mass or less, and even more preferably 1.5% by mass or less. If the 1,2-vinyl bond content is too high, the resilience may decrease.
[0069] The high-cis polybutadiene is preferably synthesized using a rare earth element catalyst, and in particular, the use of a neodymium-based catalyst using a neodymium compound, which is a lanthanum series rare earth element compound, is preferred because it can produce polybutadiene rubber having a high content of 1,4-cis bonds and a low content of 1,2-vinyl bonds with excellent polymerization activity.
[0070] The high-cis polybutadiene has a Mooney viscosity (ML 1+4 (100°C)) is preferably 30 or more, more preferably 32 or more, even more preferably 35 or more, and is preferably 140 or less, more preferably 120 or less, even more preferably 100 or less, and most preferably 80 or less. 1+4 (100°C)) is a value measured in accordance with JIS K6300 using an L rotor, with a preheating time of 1 minute, rotor rotation time of 4 minutes, and at 100°C.
[0071] The high-cis polybutadiene preferably has a molecular weight distribution Mw / Mn (Mw: weight-average molecular weight, Mn: number-average molecular weight) of 2.0 or more, more preferably 2.2 or more, even more preferably 2.4 or more, and most preferably 2.6 or more, and preferably 6.0 or less, more preferably 5.0 or less, even more preferably 4.0 or less, and most preferably 3.4 or less. If the molecular weight distribution (Mw / Mn) of the high-cis polybutadiene is too small, workability may decrease, while if it is too large, resilience may decrease. The molecular weight distribution was measured by gel permeation chromatography (manufactured by Tosoh Corporation, "HLC-8120GPC") using a differential refractometer as a detector, a column: GMHHXL (manufactured by Tosoh Corporation), a column temperature: 40°C, and a mobile phase: tetrahydrofuran, and calculated as a value converted into a standard polystyrene.
[0072] In the present disclosure, it is preferable to use polybutadiene as the (a) base rubber, and it is more preferable to use high-cis polybutadiene containing 90% by mass or more of cis-1,4-bonds.
[0073] ((b) Co-crosslinking agent) The (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or its metal salt is blended into the rubber composition as a co-crosslinking agent, and has the effect of crosslinking rubber molecules by graft polymerizing to the base rubber molecular chains.
[0074] Examples of the α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms include acrylic acid, methacrylic acid, fumaric acid, maleic acid, and crotonic acid.
[0075] Examples of metals constituting the metal salt of the α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms include monovalent metal ions such as sodium, potassium, and lithium; divalent metal ions such as magnesium, calcium, zinc, barium, and cadmium; trivalent metal ions such as aluminum; and other ions such as tin and zirconium. The metal components can be used alone or in combination of two or more. Among these, divalent metals such as magnesium, calcium, zinc, barium, and cadmium are preferred as the metal component. This is because the use of a divalent metal salt of an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms facilitates the formation of metal crosslinks between rubber molecules. Zinc acrylate is particularly preferred as the divalent metal salt, as it enhances the resilience of the resulting golf ball. The α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or its metal salt may be used alone or in combination of two or more.
[0076] The amount of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or its metal salt is preferably 20 parts by weight or more, more preferably 21 parts by weight or more, even more preferably 22 parts by weight or more, and preferably 50 parts by weight or less, more preferably 45 parts by weight or less, and even more preferably 35 parts by weight or less, per 100 parts by weight of the (a) base rubber. If the amount of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or its metal salt is less than 20 parts by weight, the amount of the (c) cross-linking initiator (described below) must be increased to achieve an appropriate hardness for the inner and outer core layers formed from the rubber composition, which tends to result in a decrease in the resilience of the resulting golf ball. On the other hand, if the amount of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or its metal salt exceeds 50 parts by weight, the inner and outer core layers formed from the rubber composition may become too hard, potentially resulting in a poor shot feel for the resulting golf ball.
[0077] ((c) Crosslinking initiator) The (c) crosslinking initiator is blended to crosslink the (a) base rubber component. An organic peroxide is suitable as the (c) crosslinking initiator. Specific examples of the organic peroxide include dicumyl peroxide, 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, 2,5-dimethyl-2,5-di(t-butylperoxy)hexane, and di-t-butyl peroxide. These organic peroxides may be used alone or in combination of two or more. Among these, dicumyl peroxide is preferably used.
[0078] The content of the (c) crosslinking initiator is preferably at least 0.2 parts by weight, more preferably at least 0.5 parts by weight, even more preferably at least 0.7 parts by weight, and preferably at most 5.0 parts by weight, more preferably at most 2.5 parts by weight, and even more preferably at most 2.0 parts by weight, per 100 parts by weight of the (a) base rubber. If the content of the (c) crosslinking initiator is less than 0.2 parts by weight, the inner core layer and outer core layer formed from the rubber composition will be too soft, and the resilience of the resulting golf ball will tend to decrease. If the content exceeds 5.0 parts by weight, it will be necessary to reduce the amount of the (b) co-crosslinking agent used to achieve an appropriate hardness for the inner core layer and outer core layer formed from the rubber composition, and the resulting golf ball may lack resilience or have poor durability.
[0079] ((d) Metal compound) When the rubber composition contains only an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms as a co-crosslinking agent, it is preferable that the rubber composition further contains (d) a metal compound. This is because, by neutralizing the α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms in the rubber composition with a metal compound, substantially the same effect as when a metal salt of an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms is used as a co-crosslinking agent. Note that, when a metal salt of an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms is used as a co-crosslinking agent, (d) a metal compound may be used as an optional component.
[0080] Examples of the (d) metal compound include metal hydroxides such as magnesium hydroxide, zinc hydroxide, calcium hydroxide, sodium hydroxide, lithium hydroxide, potassium hydroxide, and copper hydroxide; metal oxides such as magnesium oxide, calcium oxide, zinc oxide, and copper oxide; and metal carbonates such as magnesium carbonate, zinc carbonate, calcium carbonate, sodium carbonate, lithium carbonate, and potassium carbonate. Divalent metal compounds are preferred as the (d) metal compound, and zinc compounds are more preferred. This is because divalent metal compounds react with α,β-unsaturated carboxylic acids having 3 to 8 carbon atoms to form metal bridges. Furthermore, the use of zinc compounds allows for the production of golf balls with high resilience.
[0081] The (d) metal compound may be used alone or in combination of two or more kinds thereof. The content of the (d) metal compound may be appropriately adjusted depending on the desired degree of neutralization of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms.
[0082] ((e)Organic sulfur compounds) The rubber composition may further contain (e) an organic sulfur compound. By containing (e) an organic sulfur compound, the resilience of the resulting core is improved.
[0083] Examples of the (e) organic sulfur compounds include thiols, polysulfides, thiurams, thiocarboxylic acids, dithiocarboxylic acids, sulfenamides, dithiocarbamates, and thiazoles.
[0084] Examples of thiols include thiophenols and thionaphthols. Examples of the thiophenols include thiophenol; fluoro-substituted thiophenols such as 4-fluorothiophenol, 2,4-difluorothiophenol, 2,5-difluorothiophenol, 2,6-difluorothiophenol, 2,4,5-trifluorothiophenol, 2,4,5,6-tetrafluorothiophenol, and pentafluorothiophenol; and chloro-substituted thiophenols such as 2-chlorothiophenol, 4-chlorothiophenol, 2,4-dichlorothiophenol, 2,5-dichlorothiophenol, 2,6-dichlorothiophenol, 2,4,5-trichlorothiophenol, 2,4,5,6-tetrachlorothiophenol, and pentachlorothiophenol. thiophenols substituted with a bromo group such as 4-bromothiophenol, 2,4-dibromothiophenol, 2,5-dibromothiophenol, 2,6-dibromothiophenol, 2,4,5-tribromothiophenol, 2,4,5,6-tetrabromothiophenol, and pentabromothiophenol; thiophenols substituted with an iodo group such as 4-iodothiophenol, 2,4-diiodothiophenol, 2,5-diiodothiophenol, 2,6-diiodothiophenol, 2,4,5-triiodothiophenol, 2,4,5,6-tetraiodothiophenol, and pentaiodothiophenol; or metal salts thereof.
[0085] Examples of the thionaphthols (naphthalenethiols) include 2-thionaphthol, 1-thionaphthol, 1-chloro-2-thionaphthol, 2-chloro-1-thionaphthol, 1-bromo-2-thionaphthol, 2-bromo-1-thionaphthol, 1-fluoro-2-thionaphthol, 2-fluoro-1-thionaphthol, 1-cyano-2-thionaphthol, 2-cyano-1-thionaphthol, 1-acetyl-2-thionaphthol, 2-acetyl-1-thionaphthol, and metal salts thereof.
[0086] Polysulfides are organic sulfur compounds having polysulfide bonds, and examples thereof include disulfides, trisulfides, and tetrasulfides.
[0087] Examples of thiurams include thiuram monosulfides such as tetramethylthiuram monosulfide, thiuram disulfides such as tetramethylthiuram disulfide, tetraethylthiuram disulfide, and tetrabutylthiuram disulfide, and thiuram tetrasulfides such as dipentamethylenethiuram tetrasulfide. Examples of thiocarboxylic acids include naphthalene thiocarboxylic acid. Examples of dithiocarboxylic acids include naphthalene dithiocarboxylic acid. Examples of sulfenamides include N-cyclohexyl-2-benzothiazole sulfenamide, N-oxydiethylene-2-benzothiazole sulfenamide, and Nt-butyl-2-benzothiazole sulfenamide.
[0088] The (e) organic sulfur compounds can be used alone or in combination of two or more.
[0089] The content of the (e) organic sulfur compound is preferably at least 0.05 parts by weight, more preferably at least 0.1 parts by weight, and even more preferably at least 0.2 parts by weight, per 100 parts by weight of the (a) base rubber, and is preferably at most 5.0 parts by weight, more preferably at most 3.0 parts by weight, and even more preferably at most 2.0 parts by weight. If the content of the (e) organic sulfur compound is less than 0.05 parts by weight, the effect of adding the (e) organic sulfur compound may not be obtained, and the resilience of the golf ball may not be improved. On the other hand, if the content of the (e) organic sulfur compound exceeds 5.0 parts by weight, the amount of compression deformation of the resulting golf ball may be large, which may reduce resilience.
[0090] ((f) Other ingredients) The rubber composition may contain additives such as pigments, fillers for adjusting the weight, antioxidants, peptizers, and softeners, as required.
[0091] The filler used in the rubber composition is primarily blended as a weight adjuster to adjust the weight of the final golf ball product, and may be blended as needed. Examples of such fillers include inorganic fillers such as zinc oxide, barium sulfate, calcium carbonate, magnesium oxide, tungsten powder, and molybdenum powder. The amount of filler is preferably 0.5 parts by weight or more, more preferably 1 part by weight or more, and preferably 30 parts by weight or less, more preferably 25 parts by weight or less, and even more preferably 20 parts by weight or less, per 100 parts by weight of the (a) base rubber. If the filler amount is less than 0.5 parts by weight, weight adjustment becomes difficult, while if it exceeds 30 parts by weight, the weight fraction of the rubber component becomes small, tending to reduce resilience.
[0092] The content of the antioxidant is preferably 0.1 part by weight to 1 part by weight per 100 parts by weight of the (a) base rubber, and the content of the peptizing agent is preferably 0.1 part by weight to 5 parts by weight per 100 parts by weight of the (a) base rubber.
[0093] The cover of the golf ball of the present disclosure is preferably formed from a composition containing a resin component, such as an ionomer resin, a thermoplastic polyurethane elastomer commercially available from BASF Japan Ltd. under the trade name "Elastollan®," a thermoplastic polyamide elastomer commercially available from Arkema K.K. under the trade name "Pebax®," a thermoplastic polyester elastomer commercially available from DuPont-Toray Co., Ltd. under the trade name "Hytrel®," or a thermoplastic styrene elastomer commercially available from Mitsubishi Chemical Corporation under the trade name "TEFABLOC."
[0094] Examples of the ionomer resin include a binary copolymer of an olefin and an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms, in which at least a portion of the carboxyl groups are neutralized with metal ions; a terpolymer of an olefin, an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms, and an α,β-unsaturated carboxylic acid ester, in which at least a portion of the carboxyl groups are neutralized with metal ions; or a mixture thereof. The olefin is preferably an olefin having 2 to 8 carbon atoms, such as ethylene, propylene, butene, pentene, hexene, heptene, and octene, with ethylene being particularly preferred. Examples of the α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms include acrylic acid, methacrylic acid, fumaric acid, maleic acid, and crotonic acid, with acrylic acid or methacrylic acid being particularly preferred. Examples of the α,β-unsaturated carboxylic acid ester include methyl, ethyl, propyl, n-butyl, and isobutyl esters of acrylic acid, methacrylic acid, fumaric acid, and maleic acid, with acrylic acid esters and methacrylic acid esters being particularly preferred. Among these, metal ion-neutralized products of ethylene-(meth)acrylic acid binary copolymers and metal ion-neutralized products of ethylene-(meth)acrylic acid-(meth)acrylic acid ester terpolymers are preferred as the ionomer resins.
[0095] The composition constituting the cover of the golf ball of the present disclosure preferably contains a thermoplastic polyurethane elastomer or an ionomer resin as a resin component. The content of the polyurethane or ionomer resin in the resin component of the composition is preferably 50% by weight or more, more preferably 60% by weight or more, and even more preferably 70% by weight or more. If the cover has multiple layers, it is preferable that the outer cover layer be formed from a composition containing a thermoplastic polyurethane elastomer, and the inner cover layer be formed from a composition containing an ionomer resin.
[0096] In addition to the resin components described above, the composition constituting the cover of the golf ball of the present disclosure may contain pigment components such as white pigments (e.g., titanium oxide), blue pigments, and red pigments, weight adjusters such as zinc oxide, calcium carbonate, and barium sulfate, dispersants, antioxidants, ultraviolet absorbers, light stabilizers, fluorescent materials, or fluorescent brighteners, to the extent that the performance of the cover is not impaired.
[0097] The content of the white pigment (e.g., titanium oxide) is preferably 0.5 parts by mass or more, more preferably 1 part by mass or more, and preferably 10 parts by mass or less, more preferably 8 parts by mass or less, per 100 parts by mass of the resin components constituting the cover. By making the content of the white pigment 0.5 parts by mass or more, it is possible to impart hiding power to the cover. Furthermore, if the content of the white pigment exceeds 10 parts by mass, the durability of the resulting cover may decrease.
[0098] [Method of manufacturing golf balls according to the present disclosure] First, a rubber composition is prepared by blending and kneading (a) base rubber, (b) a C3-C8 α,β-unsaturated carboxylic acid and / or its metal salt as a co-crosslinking agent, (c) a crosslinking initiator, and, if necessary, (d) a metal compound, (e) an organic sulfur compound, and (f) other components. The kneading method is not particularly limited, and may be carried out using a known kneading machine such as a kneading roll, Banbury mixer, or kneader. As described above, the rubber composition for the inner core layer and the rubber composition for the outer core layer may be the same or different.
[0099] The kneaded rubber composition for the inner core layer is extruded into a rod shape using an extruder and cut to a predetermined length to produce a preform (also called a "plug"). Alternatively, the rubber composition for the inner core layer may be molded into a thick sheet and then punched out to form a plug. The size of the plug may be adjusted appropriately depending on the size of the compression molding die. The obtained plugs are preferably immersed in an anti-adhesion liquid to prevent them from sticking together, dried, and then aged for approximately 8 to 48 hours. The plugs are then placed in a core molding die and press-molded.
[0100] Next, the inner core layer is formed from the prepared rubber composition for the inner core layer. In the present disclosure, the inner core layer is preferably formed by pressing the rubber composition for the inner core layer under the following conditions. (1) The pressing temperature is preferably 150°C or higher, more preferably 160°C or higher, and is preferably 200°C or lower, more preferably 180°C or lower. (2) The pressing time is preferably 10 minutes or more, more preferably 15 minutes or more, and is preferably 40 minutes or less, more preferably 30 minutes or less.
[0101] The pressure during molding is not particularly limited, but is preferably between 2.9 MPa and 11.8 MPa.
[0102] Next, an outer core layer is formed to encase the inner core layer. Examples of methods for forming the outer core layer include a method in which a hollow shell is formed from the rubber composition for the outer core layer, and the inner core layer is encased with multiple shells and compression molded (preferably a method in which hollow half shells are formed from the rubber composition for the outer core layer, and the inner core layer is encased with two half shells and compression molded).
[0103] Conditions for molding the hollow shell from the rubber composition for the outer core layer include, for example, a pressure of 1 MPa to 20 MPa and a molding temperature of 10°C to 100°C.
[0104] Methods for molding the outer core by covering the inner core with a shell formed from the rubber composition for the outer core include a one-stage hot pressing method and a two-stage hot pressing method.
[0105] In the present disclosure, when the outer core layer is molded by a one-stage hot pressing method, it is preferable to mold the outer core layer under the following conditions. (1) The pressing temperature is preferably 130°C or higher, more preferably 140°C or higher, and is preferably 180°C or lower, more preferably 170°C or lower. (2) The pressing time is preferably 10 minutes or more, more preferably 15 minutes or more, and is preferably 40 minutes or less, more preferably 30 minutes or less.
[0106] When the outer core layer is molded by the two-stage hot pressing method, it is preferable to mold the outer core layer under the following conditions.
[0107] The conditions for the first molding step are preferably as follows. (1) The pressing temperature is preferably 100°C or higher, more preferably 110°C or higher, and is preferably 150°C or lower, more preferably 140°C or lower. (2) The pressing time is preferably 40 minutes or more, more preferably 50 minutes or more, and is preferably 90 minutes or less, more preferably 80 minutes or less.
[0108] The conditions for the second molding step are preferably as follows. (1) The pressing temperature is preferably 150°C or higher, more preferably 160°C or higher, and is preferably 200°C or lower, more preferably 180°C or lower. (2) The pressing time is preferably 5 minutes or more, more preferably 8 minutes or more, and is preferably 20 minutes or less, more preferably 15 minutes or less.
[0109] The pressure during molding is not particularly limited, but is preferably between 2.9 MPa and 11.8 MPa.
[0110] [cover] Methods for molding the cover of the golf ball of the present disclosure include, for example, a method in which a hollow shell is molded from a cover composition, the core is coated with the multiple shells, and the resulting mixture is compression molded (preferably, a method in which a hollow half shell is molded from the cover composition, the core is coated with two half shells, and the resulting mixture is compression molded), or a method in which the cover composition is directly injection molded onto the core.
[0111] When molding a cover by compression molding, the half shells can be formed by either compression molding or injection molding, but compression molding is preferred. Conditions for compression molding the cover composition into the half shells include, for example, a pressure of 1 MPa to 20 MPa and a molding temperature of -20°C to 70°C relative to the flow initiation temperature of the cover composition. By using these molding conditions, half shells with uniform thickness can be molded. Conditions for compression molding the half shells into the cover include, for example, a molding pressure of 0.5 MPa to 25 MPa and a molding temperature of -20°C to 70°C relative to the flow initiation temperature of the cover composition. By using these molding conditions, a cover with uniform thickness can be molded.
[0112] When a cover is formed by injection molding a cover composition, the cover composition may be extruded into pellets and then injection molded. Alternatively, cover materials such as base resin components and pigments may be dry-blended and then directly injection molded. The upper and lower molds for molding the cover preferably have hemispherical cavities with pimples, some of which double as retractable hold pins. The cover can be formed by injection molding by pushing out the hold pins, inserting and holding the core, injecting the cover composition, and cooling. For example, the cover composition heated to 200°C to 280°C is injected over 0.2 to 5 seconds into a mold clamped at a pressure of 9 MPa to 15 MPa, allowing it to cool for 10 to 60 seconds, and then opening the mold.
[0113] When molding a cover, depressions called dimples are usually formed on the surface. The total number of dimples formed on the cover is preferably 200 to 500. If the total number of dimples is less than 200, the effect of the dimples is difficult to obtain. Furthermore, if the total number of dimples exceeds 500, the size of each dimple becomes small, making it difficult to obtain the effect of the dimples. The shape (shape in plan view) of the formed dimples is not particularly limited, and the following may be used alone or in combination: circular; polygonal such as approximately triangular, approximately rectangular, approximately pentagonal, or approximately hexagonal; or other irregular shapes.
[0114] The golf ball body with the molded cover is preferably removed from the mold and, if necessary, subjected to surface treatments such as deburring, cleaning, and sandblasting. A coating film or markings can also be formed as desired. The thickness of the coating film is not particularly limited, but is preferably 5 μm or more, more preferably 7 μm or more, and preferably 50 μm or less, more preferably 40 μm or less, and even more preferably 30 μm or less. A coating film thickness of less than 5 μm is prone to wear and wear with continued use, while a coating film thickness of more than 50 μm reduces the effect of the dimples, resulting in a decrease in the flight performance of the golf ball. [Example]
[0115] The present disclosure will be described in detail below using examples, but the present disclosure is not limited to the following examples, and all modifications and embodiments that do not deviate from the spirit of the present disclosure are included within the scope of the present disclosure.
[0116] [Evaluation method] (1) Compressive deformation The amount of deformation in the compression direction (the amount the golf ball shrinks in the compression direction) was measured from when an initial load of 98 N was applied to the golf ball until a final load of 1275 N was applied.
[0117] (2) Core hardness (Shore C hardness) The surface hardness of the core was measured. The core was also cut into a hemisphere, and the hardness was measured at the center of the cut surface and at a specified distance from the center. The hardness was measured using an automatic hardness tester (H. Burleith, DigiTest II). The detector used was Shore C.
[0118] (3) Slab hardness (Shore D hardness) The resin composition was injection molded into a sheet approximately 2 mm thick and stored at 23°C for two weeks. Three or more of these sheets were stacked to avoid the influence of the measurement substrate, and the hardness was measured using an automatic hardness tester (Digitest II, manufactured by H. Burleith Co.). A Shore D detector was used.
[0119] (4) Amount of spin when hitting a golf ball with a driver (W#1 condition) A driver with a titanium head (SRIXON Z785 manufactured by Sumitomo Rubber Industries, Ltd., loft 9.5°) was attached to a swing robot M / C manufactured by True Temper, and a golf ball was hit at a head speed of 50 m / s, and the spin rate of the golf ball immediately after impact was measured. Measurements were performed 10 times for each golf ball, and the average value was used as the measurement value for that golf ball. The spin rate of the golf ball immediately after impact was measured by taking continuous photographs of the hit golf ball.
[0120] (5) Amount of spin when hitting a golf ball with an 8-iron (I#8 condition) An 8-iron (SRIXON Z785 manufactured by Sumitomo Rubber Industries, Ltd., loft 36°) with a titanium head was attached to a swing robot M / C manufactured by True Temper, and a golf ball was hit at a head speed of 39 m / s, and the spin rate of the golf ball immediately after impact was measured. Measurements were performed 10 times for each golf ball, and the average value was used as the measurement value for that golf ball. The spin rate of the golf ball immediately after impact was measured by taking continuous photographs of the hit golf ball.
[0121] (6) Backspin and topspin impulses under conditions equivalent to hitting a golf ball with a driver (W#1 conditions) The impulses of backspin and topspin were measured using a contact force tester shown in Figure 2. Specifically, a golf ball was launched from a launching device at a launch speed of 42 m / s and collided with the striking surface of a collision plate 23 tilted at an angle of 13 degrees (α = 13 degrees) relative to the flight direction (vertical direction) of the golf ball. At this time, a load cell installed below the collision plate 23 measured the shear force from when the golf ball contacted the collision plate 23 until it separated, and the impulses of backspin and topspin were calculated from the obtained waveform. The collision plate 23 was made of a titanium plate as shown in Figure 5. The measurement was performed 18 times for each golf ball, and the average value was used as the measurement value for that golf ball.
[0122] (7) Backspin and topspin impulses under conditions equivalent to hitting a golf ball with an 8-iron (I#8 condition) Measurements were carried out in the same manner as in (6) above, except that the launch speed of the golf ball was 32 m / s, the tilt angle (α) of the impact plate 23 was 36 degrees, and the face of an 8-iron (SRIXON Z785 manufactured by Sumitomo Rubber Industries, Ltd.) (Figure 6) was used as the impact plate 23.
[0123] [Manufacturing golf balls] (1) Preparation of the inner core The rubber composition for the inner core layer having the formulation shown in Table 1 was kneaded and then hot-pressed under predetermined conditions in upper and lower molds having hemispherical cavities to obtain a spherical inner core layer having a diameter of 20 mm. The amount of barium sulfate added was adjusted so that the final golf ball would have a mass of 45.3 g.
[0124] [Table 1]
[0125] (2) Preparation of the outer core The rubber composition for the outer core layer, as shown in Table 2, was kneaded, and half shells were molded from the rubber composition for the outer core layer. The half shells were molded by placing the rubber composition for the outer core layer into each recess in the lower mold of a half-shell molding die, followed by pressure. Compression molding was performed at a molding temperature of 25°C, a molding time of 3 minutes, and a molding pressure of 15 MPa. The inner core layer thus obtained was then covered with two half shells. The inner core layer and half shells were placed in a mold consisting of upper and lower molds each equipped with a hemispherical cavity, and hot-pressed under specified conditions to obtain a spherical core (thickness of the outer core layer: 9.85 mm). The amount of barium sulfate added was adjusted so that the final golf ball would have a mass of 45.3 g.
[0126] [Table 2]
[0127] The materials used in Tables 1 and 2 are as follows: BR730: High-cis polybutadiene rubber manufactured by JSR Corporation (cis-1,4-bond content = 95 mass%, 1,2-vinyl bond content = 1.3 mass%, Mooney viscosity (ML 1+4 (100℃)=55, molecular weight distribution (Mw / Mn)=3) ZN-DA90S: Zinc acrylate manufactured by Nisshoku Techno Fine Chemical Co., Ltd. Percumyl (registered trademark) D: Dicumyl peroxide manufactured by NOF Corporation Zinc oxide: "Ginrei R" manufactured by Toho Zinc Co., Ltd. Barium sulfate: Sakai Chemical Industry Co., Ltd., "Barium Sulfate BD" YS Polyster T130: Terpene phenol resin manufactured by Yasuhara Chemical Co., Ltd.
[0128] (3) Preparation of the intermediate layer The materials listed in Table 3 were mixed in a twin-screw extruder to prepare pellets of an intermediate layer composition. The extrusion conditions were a screw diameter of 45 mm, a screw rotation speed of 200 rpm, and a screw length / distance ratio (L / D) of 35. The composition was heated to 200 to 260°C at the extruder die. The intermediate layer composition was directly injection molded onto the spherical core obtained above to form a 1.0 mm-thick intermediate layer covering the spherical core, producing an intermediate layer-coated sphere. The upper and lower molds had hemispherical cavities and retractable hold pins that supported the spherical body. During intermediate layer molding, the hold pins were extended to hold the spherical core after insertion. The intermediate layer composition heated to 260°C was injected into the mold clamped under a pressure of 80 tons over 0.3 seconds. The mold was then cooled for 30 seconds, opened, and the intermediate layer-coated sphere was removed.
[0129] [Table 3]
[0130] The materials used in Table 3 are as follows: Surlyn® 8945: Sodium ion-neutralized ethylene-methacrylic acid copolymer ionomer resin, manufactured by DuPont Himilan (registered trademark) AM7329: Zinc ion-neutralized ethylene-methacrylic acid copolymer ionomer resin manufactured by DuPont-Mitsui Polychemicals Co., Ltd.
[0131] (4) Making the cover The materials listed in Table 4 were mixed in a twin-screw extruder to prepare pelletized cover compositions. The extrusion conditions were a screw diameter of 45 mm, a screw rotation speed of 200 rpm, and a screw length / depth (L / D) ratio of 35. The compound was heated to 200-260°C at the extruder die. The resulting pelletized cover compositions were placed in each recess of the lower mold of a half-shell molding die, and pressed to form half shells. Compression molding was performed at a molding temperature of 170°C, a molding time of 5 minutes, and a molding pressure of 2.94 MPa. The intermediate layer-coated sphere obtained above was concentrically coated with two half shells, and a 0.5 mm-thick cover was formed by compression molding. Compression molding was performed at a molding temperature of 145°C, a molding time of 2 minutes, and a molding pressure of 9.8 MPa.
[0132] [Table 4]
[0133] The materials used in Table 4 are as follows: Elastollan (registered trademark) XNY82A: Thermoplastic polyurethane elastomer manufactured by BASF Japan Tinuvin (registered trademark) 770: bis(2,2,6,6-tetramethyl-4-piperidyl) sebacate, manufactured by BASF Japan Ltd.
[0134] The results of evaluation of the resulting golf balls are shown in Tables 5 and 6. [Table 5]
[0135] [Table 6]
[0136] Golf Balls Nos. 1 to 5 are golf balls comprising a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core, wherein, where a is the average hardness (Shore C) of the hardness (H2.5) at a point 2.5 mm from the center of the spherical core and the hardness (H5) at a point 5 mm from the center of the spherical core, b is the average hardness (Shore C) of the hardness (H7.5) at a point 7.5 mm from the center of the spherical core and the hardness (H9) at a point 9 mm from the center of the spherical core, A is the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester when the golf ball is hit with a driver, and B is the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester when the golf ball is hit with an 8-iron, A×a is 12,200 or less, and B×b is 20,400 or more.
[0137] From Table 5, it can be seen that for golf balls No. 1 to 5, the ratio of the spin amount under I#8 conditions to the spin amount under W#1 conditions (spin amount under I#8 conditions / spin amount under W#1 conditions) is 3.00 or more, which means that the increase in spin amount when hit with a driver can be suppressed while the spin amount when hit with an 8 iron can be increased. [Industrial Applicability]
[0138] The golf ball of the present disclosure can suppress an increase in the spin rate when hit with a driver, while increasing the spin rate when hit with an 8-iron. [Explanation of symbols]
[0139] 1: Contact force tester, 2: Golf ball, 3: Striking surface, 4: Impact plate, 5: Launching device, 6: Controller, 7: Strobe device, 8: High-speed camera device, 9: Strobe power supply, 10: Camera power supply, 11: Spherical core, 11a: Inner core, 11b: Outer core, 12: Cover, 14: Dimple, 16: Land
[0140] The golf ball of the present disclosure (1) is A golf ball comprising a spherical core having an inner core layer and an outer core layer, and a cover positioned outside the spherical core, The average hardness (Shore C) of the hardness (H2.5) at a point 2.5 mm from the center of the spherical core and the hardness (H5) at a point 5 mm from the center of the spherical core is defined as a, The average hardness (Shore C) of the hardness (H7.5) measured at a point 7.5 mm from the center of the spherical core and the hardness (H9) measured at a point 9 mm from the center of the spherical core is defined as b, When hitting a golf ball with a driver, the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester is defined as A. When hitting a golf ball with an 8-iron, let B be the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester. A×a is 12,200 or less, and B×b is 20,400 or more.
[0141] The golf ball of the present disclosure (2) is the golf ball according to the present disclosure (1), in which the ratio of (B×b) to (A×a), ((B×b) / (A×a)), is 1.80 or greater.
[0142] The golf ball of the present disclosure (3) is the golf ball according to the present disclosure (1) or (2), in which the ratio (B / A) of the impulse difference B to the impulse difference A is 1.60 or greater.
[0143] The golf ball of the present disclosure (4) is the golf ball according to any one of the present disclosures (1) to (3), in which the average hardness a is 70 or less in Shore C hardness and the average hardness b is 70 or more in Shore C hardness.
[0144] The golf ball of the present disclosure (5) is the golf ball according to any one of the present disclosures (1) to (4), in which the hardness difference (Hs-H11) between the surface hardness (Hs) of the spherical core and the hardness (H11) at a point 11 mm from the center of the spherical core is 0 or greater in Shore C hardness.
[0145] The golf ball of the present disclosure (6) is the golf ball according to any one of the present disclosures (1) to (5), in which the hardness difference (H9-Ho) between the hardness (H9) at a point 9 mm from the center of the spherical core and the center hardness (Ho) of the spherical core is 5 or more in Shore C hardness.
[0146] The golf ball of the present disclosure (7) is the golf ball according to any one of the present disclosures (1) to (6), in which the inner core layer is a spherical core having a diameter of 14 mm to 28 mm, and the outer core layer has a thickness of 6 mm to 13 mm.
Claims
1. A golf ball comprising a spherical core having a spherical inner core layer and an outer core layer covering the spherical inner core layer, and a cover positioned outside the spherical core layer, the inner core layer is formed from a rubber composition for an inner core layer, which comprises (a) a base rubber, (b) an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or a metal salt thereof as a co-crosslinking agent, and (c) a crosslinking initiator, wherein the content of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or a metal salt thereof is 20 parts by weight or more and 35 parts by weight or less per 100 parts by weight of the (a) base rubber, the outer core layer is formed from a rubber composition for the outer core layer, which comprises (a) a base rubber, (b) an α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or a metal salt thereof as a co-crosslinking agent, and (c) a crosslinking initiator, wherein the content of the (b) α,β-unsaturated carboxylic acid having 3 to 8 carbon atoms and / or a metal salt thereof is 20 parts by weight or more and 30 parts by weight or less per 100 parts by weight of the (a) base rubber, The average hardness (Shore C) of the hardness (H2.5) measured at a point 2.5 mm from the center of the spherical core and the hardness (H5) measured at a point 5 mm from the center of the spherical core is defined as a, the average hardness (Shore C) of the hardness (H7.5) measured at a point 7.5 mm from the center of the spherical core and the hardness (H9) measured at a point 9 mm from the center of the spherical core is designated b; The impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with a driver is defined as A, When the impulse difference (kN μs) between the backspin impulse and the topspin impulse measured using a contact force tester under conditions equivalent to hitting a golf ball with an 8-iron is defined as B, A golf ball having A×a of 7,000 or more and 12,200 or less, and B×b of 20,400 or more and 28,000 or less.
2. 2. The golf ball according to claim 1, wherein the ratio ((B*b) / (A*a)) of (B*b) to (A*a) is 1.80 or greater.
3. 3. The golf ball according to claim 1, wherein the ratio (B / A) of the impulse difference B to the impulse difference A is 1.60 or greater.
4. 4. The golf ball according to claim 1, wherein the average hardness a is 70 or less in Shore C hardness, and the average hardness b is 70 or more in Shore C hardness.
5. 5. The golf ball according to claim 1, wherein the difference in hardness (Hs-H11) between the surface hardness (Hs) of the spherical core and the hardness (H11) at a point 11 mm from the center of the spherical core is 0 or greater in Shore C hardness.
6. 6. The golf ball according to claim 1, wherein the difference in hardness (H9-Ho) between the hardness (H9) at a point 9 mm from the center of the spherical core and the center hardness (Ho) of the spherical core is 5 or more in Shore C hardness.
7. 7. The golf ball according to claim 1, wherein the inner core is spherical and has a diameter of 14 mm to 28 mm, and the outer core has a thickness of 6 mm to 13 mm.
8. The golf ball according to claim 1, wherein the spherical core has a center hardness (Ho) of 60 or more and 75 or less in Shore C hardness.
Citation Information
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